English

Machine-learned Interatomic Potential for Ti$_{n+1}$C$_n$ MXenes: Application to Ion Irradiation Simulations

Materials Science 2026-03-05 v1 Computational Physics

Abstract

A computationally efficient and accurate machine-learned (ML) interatomic potential is developed for Tin+1_{n+1}Cn_n MXenes. With a diverse set of structures computed with density functional theory, the trained ML potential demonstrates good accuracy and robustness to a wide range of bond distances and environments, making it a useful tool for molecular dynamics simulations of MXenes subjected to mechanical load or irradiation. The ML potential is applied to simulations of light and heavy ion irradiation, gathering insight into the statistics and probabilities of sputtering, reflection, defect creation, and implantation into Tin+1_{n+1}Cn_n MXene sheets. The results provide guidelines for defect engineering of MXenes through ion irradiation and implantation. Additionally, the ML potential development provides a landmark recipe for enabling machine-learning-driven atomistic simulations of other MXenes.

Keywords

Cite

@article{arxiv.2603.04152,
  title  = {Machine-learned Interatomic Potential for Ti$_{n+1}$C$_n$ MXenes: Application to Ion Irradiation Simulations},
  author = {Jesper Byggmästar},
  journal= {arXiv preprint arXiv:2603.04152},
  year   = {2026}
}